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Updated: Aug 13, 2026

Human Egg Maturity Assessment and Its Clinical Application
Published on: August 19, 2019
Developmental potential and ultrastructural injuries of metaphase II (MII) mouse oocytes after slow freezing or
Mojtaba Rezazadeh Valojerdi1, Mojdeh Salehnia
1Department of Anatomy, School of Medical Sciences, Tarbiat Modarres University, P.O. Box: 14115-111, Tehran, Iran. info@royaninstitute.org
Purpose:
The purpose of this study was to determine the developmental ability and ultrastructure of MII mouse oocytes after cryopreservation by slow freezing or vitrification.
Methods:
Ovulated MII mouse oocytes were allocated to slow frozen, vitrified and control groups. Oocytes in the slow frozen and vitrified groups were cryopreserved using 1,2 propandiol (PROH) and ethylene glycol (EG) respectively as cryoprotectants. After thawing, the surviving MII oocytes in both cryopreserved groups and the control group were inseminated and their developmental ability was compared. The ultrastructure of MII oocytes in both cryopreserved groups was assessed immediately after thawing and 10 h post insemination at the pronuclear stage, and compared with that of the control group.
Results:
The survival rates were nearly identical in both cryopreserved groups. The fertilization rates were also identical and comparable to that of the control group. The further development of vitrified oocytes was similar to that of the control oocytes, whereas it was severely limited in the slow-frozen oocytes. In the slow-frozen MII oocytes, the intermediate filaments were destroyed and the oolemma and microvilli were also modified. At the pronuclear stage deterioration of mitochondria and the presence of numerous vacuoles were also observed within the ooplasm. In the vitrified MII oocytes, the intermediate filaments were the only structures affected and these cytoskeletal elements were reorganized at the pronuclear stage.
Conclusions:
Vitrification results in less ultrastructural damage and better post fertilization development of MII mouse oocytes than slow freezing.
Insights
Vitrification offers better outcomes for preserving mouse oocytes than slow freezing, with less damage and improved development. This method is crucial for successful cryopreservation of MII oocytes.
Area of Science:
- Reproductive biology
- Cell biology
- Cryobiology
Background:
- Cryopreservation of oocytes is vital for assisted reproductive technologies.
- Evaluating different cryopreservation methods is essential for optimizing outcomes.
- Mouse oocytes are a standard model for studying cryopreservation techniques.
Purpose of the Study:
- To compare the developmental potential of MII mouse oocytes after slow freezing versus vitrification.
- To assess the ultrastructural integrity of MII mouse oocytes following cryopreservation by slow freezing or vitrification.
Main Methods:
- MII mouse oocytes were cryopreserved using either slow freezing (1,2-propanediol) or vitrification (ethylene glycol).
- Post-thaw survival, fertilization rates, and subsequent development were evaluated.
- Oocyte ultrastructure was examined immediately after thawing and at the pronuclear stage.
Main Results:
- Survival and fertilization rates were similar between slow-frozen and vitrified oocytes.
- Vitrification resulted in significantly better post-fertilization development compared to slow freezing.
- Slow freezing caused severe damage to oocyte ultrastructure, including intermediate filaments, oolemma, and microvilli.
- Vitrification affected only intermediate filaments, with reorganization observed at the pronuclear stage.
Conclusions:
- Vitrification is superior to slow freezing for preserving MII mouse oocytes.
- Vitrification minimizes ultrastructural damage and enhances post-fertilization development.
- This study highlights vitrification as a preferred method for oocyte cryopreservation.
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